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I have this code

color(blue).
color(red).
color(blue).
color(green).

I want to make a rule that will count how many times the X color exists. For this case count_color(X) should return 2.

Is that possible in this way or i have to make a list with the colors?

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4  
Do you mean that after calling count_color(blue, X), X should be 2? – svick May 28 '11 at 19:01
    
This question covers the same ground as this earlier one, which presents a method of solution not yet described here (assert/retract) besides the two which are. – hardmath May 31 '11 at 1:25

It is possible by using the aggregate/3 predicate:

count_color(Color, N) :- aggregate(count, color(Color), N).

A pointer for using aggregate/3: aggregate/3 in swi-prolog

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aggregate/3 does not exist in ISO prolog, so it's not available in all implementations. But you can get the same result using findall/3, as in:

count_color(Color, N) :- findall(_, color(Color), List), length(List, N).
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